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计算机模拟突变蛋白的分子力学与动力学表征:用于靶向蛋白体内和体外分析的独立实验室模块或辅助活动。

Molecular mechanics and dynamics characterization of an in silico mutated protein: a stand-alone lab module or support activity for in vivo and in vitro analyses of targeted proteins.

作者信息

Chiang Harry, Robinson Lucy C, Brame Cynthia J, Messina Troy C

机构信息

Department of Physics, Centenary College of Louisiana, Shreveport, Louisiana, 71104.

出版信息

Biochem Mol Biol Educ. 2013 Nov-Dec;41(6):402-8. doi: 10.1002/bmb.20737. Epub 2013 Nov 9.

Abstract

Over the past 20 years, the biological sciences have increasingly incorporated chemistry, physics, computer science, and mathematics to aid in the development and use of mathematical models. Such combined approaches have been used to address problems from protein structure-function relationships to the workings of complex biological systems. Computer simulations of molecular events can now be accomplished quickly and with standard computer technology. Also, simulation software is freely available for most computing platforms, and online support for the novice user is ample. We have therefore created a molecular dynamics laboratory module to enhance undergraduate student understanding of molecular events underlying organismal phenotype. This module builds on a previously described project in which students use site-directed mutagenesis to investigate functions of conserved sequence features in members of a eukaryotic protein kinase family. In this report, we detail the laboratory activities of a MD module that provide a complement to phenotypic outcomes by providing a hypothesis-driven and quantifiable measure of predicted structural changes caused by targeted mutations. We also present examples of analyses students may perform. These laboratory activities can be integrated with genetics or biochemistry experiments as described, but could also be used independently in any course that would benefit from a quantitative approach to protein structure-function relationships.

摘要

在过去20年里,生物科学越来越多地融入化学、物理学、计算机科学和数学,以助力数学模型的开发与应用。这种综合方法已被用于解决从蛋白质结构-功能关系到复杂生物系统运作等各种问题。现在,利用标准计算机技术就能快速完成分子事件的计算机模拟。此外,大多数计算平台都能免费获取模拟软件,并且为新手用户提供了充足的在线支持。因此,我们创建了一个分子动力学实验室模块,以增强本科生对构成生物体表型的分子事件的理解。该模块基于之前描述的一个项目,在该项目中,学生使用定点诱变来研究真核蛋白激酶家族成员中保守序列特征的功能。在本报告中,我们详细介绍了一个分子动力学模块的实验活动,该模块通过提供一种由假设驱动且可量化的方法来衡量靶向突变引起的预测结构变化,从而对表型结果起到补充作用。我们还展示了学生可能进行的分析示例。这些实验活动可以如所述与遗传学或生物化学实验相结合,但也可以在任何受益于蛋白质结构-功能关系定量方法的课程中独立使用。

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